2,3-氧化角鲨烯环化酶在植物体内的扩展和分化演化导致了不同的三萜骨架。

IF 6.2 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jing Wang, Yanhong Guo, Xue Yin, Xiaoning Wang, Xiaoquan Qi, Zheyong Xue
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引用次数: 19

摘要

三萜类化合物是次生代谢产物中最大的一类,其结构多样,来源于C30骨架,由2,3-氧化角鲨烯环化通过类异戊二烯途径生物合成。三萜具有广泛的生物活性,被广泛应用于功能性食品、药品和工业原料中。由于其在原生植物中的含量较低,化学合成的可行性和效率有限,异源生物合成三萜是最有前途的策略。本文根据构象和环数对121种三萜醇/酮类进行了分类,其中51种骨架已被实验表征为氧化角鲨烯环化酶(OSCs)的产物。有趣的是,24个未从自然来源报道的骨架是由osc异源表达产生的。对已鉴定的25目75种152种OSCs的综合进化分析表明,多种五环三萜合成酶在多个植物谱系中重复产生。OSC催化反应的对比分析表明,中间阳离子的稳定性、位阻和活性中心氨基酸残基的构象是影响三萜生成的主要因素。通过改变关键残基的侧链取向,可以实现盐含量的优化。近年来,人们从途径的合理设计、代谢流量的调控、区隔化工程等方面介绍了改善三萜生物合成基质的方法。我们期望通过对大量OSCs自然变异及其催化机理的深入研究,为应用合成生物学策略生产高水平的三萜化合物提供依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diverse triterpene skeletons are derived from the expansion and divergent evolution of 2,3-oxidosqualene cyclases in plants.

Triterpenoids are one of the largest groups of secondary metabolites and exhibit diverse structures, which are derived from C30 skeletons that are biosynthesized via the isoprenoid pathway by cyclization of 2,3-oxidosqualene. Triterpenoids have a wide range of biological activities, and are used in functional foods, drugs, and as industrial materials. Due to the low content levels in their native plants and limited feasibility and efficiency of chemical synthesis, heterologous biosynthesis of triterpenoids is the most promising strategy. Herein, we classified 121 triterpene alcohols/ketones according to their conformation and ring numbers, among which 51 skeletons have been experimentally characterized as the products of oxidosqualene cyclases (OSCs). Interestingly, 24 skeletons that have not been reported from nature source were generated by OSCs in heterologous expression. Comprehensive evolutionary analysis of the identified 152 OSCs from 75 species in 25 plant orders show that several pentacyclic triterpene synthases repeatedly originated in multiple plant lineages. Comparative analysis of OSC catalytic reaction revealed that stabilization of intermediate cations, steric hindrance, and conformation of active center amino acid residues are primary factors affecting triterpene formation. Optimization of OSC could be achieved by changing of side-chain orientations of key residues. Recently, methods, such as rationally design of pathways, regulation of metabolic flow, compartmentalization engineering, etc., were introduced in improving chassis for the biosynthesis of triterpenoids. We expect that extensive study of natural variation of large number of OSCs and catalytical mechanism will provide basis for production of high level of triterpenoids by application of synthetic biology strategies.

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来源期刊
CiteScore
14.90
自引率
0.00%
发文量
6
期刊介绍: As the discipline of biochemistry and molecular biology have greatly advanced in the last quarter century, significant contributions have been made towards the advancement of general medicine, genetics, immunology, developmental biology, and biophysics. Investigators in a wide range of disciplines increasingly require an appreciation of the significance of current biochemical and molecular biology advances while, members of the biochemical and molecular biology community itself seek concise information on advances in areas remote from their own specialties. Critical Reviews in Biochemistry and Molecular Biology believes that well-written review articles prove an effective device for the integration and meaningful comprehension of vast, often contradictory, literature. Review articles also provide an opportunity for creative scholarship by synthesizing known facts, fruitful hypotheses, and new concepts. Accordingly, Critical Reviews in Biochemistry and Molecular Biology publishes high-quality reviews that organize, evaluate, and present the current status of high-impact, current issues in the area of biochemistry and molecular biology. Topics are selected on the advice of an advisory board of outstanding scientists, who also suggest authors of special competence. The topics chosen are sufficiently broad to interest a wide audience of readers, yet focused enough to be within the competence of a single author. Authors are chosen based on their activity in the field and their proven ability to produce a well-written publication.
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